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Sr2CdGe3O9: A Potential Zero-Order Waveplate Crystal Featuring an Enlarged Bandgap and Extended Mid-Infrared
Yujun Wang1, Peng Zhao2, Xianghao Kong1
1State Key Laboratory of Crystal Materials, Tianjin Key Laboratory of Functional Crystal Materials, Institute of Functional Crystals, Tianjin University of Technology Tianjin 300384, China.
Abstract:
Zero-order waveplates play pivotal roles in polarization manipulation and laser technology, yet the fabrication of zero-order waveplate crystals that simultaneously exhibit small birefringence, a large bandgap, and a wide infrared (IR) transmission range remains a challenge. In this work, a novel germanate optical crystal, Sr2CdGe3O9 (SCGO), featuring isolated rigid [Ge3O9] clusters, was identified through spontaneous crystallization. SCGO demonstrates remarkable thermal stability, with an incongruent melting point of 1054 °C. Importantly, SCGO displays a favorable low birefringence of 0.006@1064 nm, superior to that of the commercially available waveplate crystal α-SiO2 (0.0092@532 nm). Additionally, this crystal exhibits an enlarged bandgap of 4.7 eV, a notably short UV cutoff edge at 225 nm, outperforming most germanates containing transition metals, along with an extended IR transmission window up to 6.0 μm. These exciting optical properties highlight the potential of SCGO as a zero-order waveplate crystal spanning from the UV to mid-IR wavelength range. The presence of isolated [Ge3O9] groups in the SCGO structure introduces a weak structural anisotropy, opening up new avenues for exploring zero-order waveplate materials in wide wavelength ranges.
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